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An Open Medical Platform to Share Source Code and Various Pre-Trained Weights for Models to Use in Deep Learning Research
Korean Journal of Radiology ; : 2073-2081, 2021.
Artigo em Inglês | WPRIM (Pacífico Ocidental) | ID: wpr-918180
Biblioteca responsável: WPRO
ABSTRACT
Deep learning-based applications have great potential to enhance the quality of medical services. The power of deep learning depends on open databases and innovation. Radiologists can act as important mediators between deep learning and medicine by simultaneously playing pioneering and gatekeeping roles. The application of deep learning technology in medicine is sometimes restricted by ethical or legal issues, including patient privacy and confidentiality, data ownership, and limitations in patient agreement. In this paper, we present an open platform, MI2RLNet, for sharing source code and various pre-trained weights for models to use in downstream tasks, including education, application, and transfer learning, to encourage deep learning research in radiology. In addition, we describe how to use this open platform in the GitHub environment. Our source code and models may contribute to further deep learning research in radiology, which may facilitate applications in medicine and healthcare, especially in medical imaging, in the near future. All code is available at https//github.com/mi2rl/MI2RLNet.
Texto completo: Disponível Base de dados: WPRIM (Pacífico Ocidental) Aspecto: Aspectos éticos Idioma: Inglês Revista: Korean Journal of Radiology Ano de publicação: 2021 Tipo de documento: Artigo
Texto completo: Disponível Base de dados: WPRIM (Pacífico Ocidental) Aspecto: Aspectos éticos Idioma: Inglês Revista: Korean Journal of Radiology Ano de publicação: 2021 Tipo de documento: Artigo
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